Biology

Genetic Engineering and Biotechnology

2,010 Questions

Genetic engineering and biotechnology involve modifying organism DNA to develop transgenic crops, medical treatments, and industrial solutions. This field covers essential techniques like hybridoma technology, molecular markers, and gene transfer in eukaryotic cells. These biology topics are essential for aspirants preparing for various competitive examinations.

Genetic engineering techniquesTransgenic organismsIndustrial biotechnologyGMOs and bioremediation

Genetic Engineering and Biotechnology Questions

Multiple choice
  1. Biopiracy : Exploitation of bioresources without authentic permission

  2. Bioethics : Moral guidance to the problems in biology

  3. Biopotency : Measure of the ability of a material to have a specified biochemical function

  4. Cryopreservation : Preserving germplasm in frozen state

  5. Biolistics : Technique of using very small metal particles coated with desired gene in the gene transfer

Reveal answer Fill a bubble to check yourself
B Correct answer
Explanation

Bioethics is a set of standards used to regulate own or community activity in relation to biological world.

Multiple choice
  1. which grows under genetic measures

  2. which is genetically modified

  3. which grows under geographical modification

  4. with greater glucose metabolism capacity

Reveal answer Fill a bubble to check yourself
B Correct answer
Explanation

GM food stands for Genetically Modified food, which refers to organisms whose genetic material has been altered using genetic engineering techniques.

Multiple choice
  1. There is not enough GM seed in India.

  2. This brings artificiality into farming.

  3. The concept of GM crops has not yet caught the imagination of farmers.

  4. GM seed may have other unseen ramifications.

  5. GM seed is costly.

Reveal answer Fill a bubble to check yourself
D Correct answer
Explanation

The increase in volume through disease resistance is alright. But, what about the side effects? The government will continue to be wary until safety of GM crops is firmly established.

Multiple choice

The following can be surmised about a 'gene' from the passage except __________________.

Directions: Answer the question based on the following passage.

Now that we have decoded the human genome, why don't we improve it?
The question is at present theoretical but could well emerge as the hardest of all bioethical issues. Biologists routinely alter the genes of mice, with methods that are not yet acceptable for making inheritable changes in people, but one day genetic engineers may figure out how to apply safe patches to the human biological software.
Everyone would like to have children who are healthy, beautiful and gifted. But people vary widely in all these qualities, depending on their parents' genes, and the pure luck of the draw at conception when each child gets allotted a random selection of half the parental gene pool.
Most human genes exist in several different versions in the population: some of them are great to have, some so-so and some downright deleterious.
This month the Icelandic company Decode Genetics found three quite common versions of a gene called BMP-2, each of which considerably increases its owner's risk of osteoporosis and bone fracture.
Suppose it was possible to delete any bad version of BMP-2, and of all other human genes, in a human embryo, and to replace them with good versions, without any risk to health. Would that be the right thing to do?
Parents who made such a choice would know they had given their child the best possible start in life. However expensive the procedure, it would be cheap in the long run if it saved a lifetime of medical bills, and therefore could be made available to all. Life's most serious unfairness, the difference in genetic endowment, would be erased from birth.
"One day, people may view sex as essentially recreational, and conception as something best done in the laboratory," Dr. Gregory Stock wrote recently in "Redesigning Humans.” Parents may start to believe it is "reckless and primitive to conceive a child without prior genetic testing."
Yet there are weighty arguments for not making inheritable changes to the human genome.
On the practical side, many genes have more than one effect, and swapping out the bad version of a gene can have unpredictable complications. The new gene, for example, may interact badly with the person's other genes.
But if the elimination of disease-causing variants of genes should prove successful, there might be no holding the line against parents who wanted to enhance strength or intelligence as well.
Upgrading the imperfect human material is all very well, but handling the transition between the super people and the ordinary variety promises to be awkward. Social stresses may emerge, especially if the technology does not trickle down quickly and smoothly.
Soup up those genes for I.Q.? Altering the genes that shape human behavior is not to be 0undertaken lightly. Human nature is a subtle blend of contrary qualities, the only survivor of evolution's many disastrous experiments. What could justify the risk of messing with such a delicate brew? Can't we be happy as we are, just as nature has shaped us?
"The human body and mind, highly complex and delicately balanced as a result of eons of gradual and exacting evolution, are almost certainly at risk from any ill-considered attempt at `improvement,' " the President's Council on Bioethics wrote in a report last month on the dangers of enhancing the body's natural abilities.
As the products of evolution, people may seem churlish if they challenge evolution's wisdom. But of course, evolution has none. It is a blind process that depends on constant error to create occasional lucky accidents.
By culling the unfortunate owners of bad genes, evolution keeps animals healthy and vigorous until the age of reproduction, and a bit beyond for species that provide parental care.
But evolution's rigor at favoring good genes that act early in life is mirrored by a weakness in screening out bad genes that act after the age of reproduction. Because of this weakness, evolution has failed to eliminate the bone-fracturing variants of BMP-2, and the bad, late-acting versions of many other genes in the human genome. This is the very reason that we age and die.
If evolution cannot help us after a certain age, why should we not help ourselves? Should not everyone have a right to the best versions of the genes in our collective genetic heritage, or at least to be born free of the worse ones?
And yet, if we reduce genetic differences, we risk turning the human population into one giant clone, tedious to meet with and bereft of the variation needed to respond to changing environments. The pursuit of perfection, if carried to extremes, is sure recipe for extinction.

 

  1. it is responsible for all the equivalence in the races

  2. it takes charge of all the chronological pattern of a life

  3. the non-mutability of the genes render it open to genetic alterations

  4. a gene is actively relevant basically in terms of its expression

Reveal answer Fill a bubble to check yourself
A Correct answer
Explanation

(1) is not correct as according to the following lines: “Most human genes exist in several different versions in the population: some of them are great to have, some so-so and some downright deleterious”, it can be inferred that difference in genes leads to the difference in the population. Hence, it can be derived that similarity in genes can also be the cause of similarity in population. (1) is not correct as according to the following lines: “Most human genes exist in several different versions in the population: some of them are great to have, some so-so and some downright deleterious”, it can be inferred that difference in genes leads to the difference in the population. Hence, it can be derived that similarity in genes can also be the cause of similarity in population. (2) also states a fact about the function of genes as is obvious from the following lines of the passage: “By culling the unfortunate owners of bad genes, evolution keeps animals healthy and vigorous until the age of reproduction, and a bit beyond for species that provide parental care.” (3) is not correct and hence the right answer as the very fact that mutation can happen or be done to genes, renders it open to both evolution and genetic engineering. (4) is also correct as can be derived from the following lines: “On the practical side, many genes have more than one effect, and swapping out the bad version of a gene can have unpredictable complications”. (5) also states a fact.

Multiple choice

It can be dangerous to opt for genetic engineer because ___________________.

Directions: Answer the question based on the following passage.

Now that we have decoded the human genome, why don't we improve it?
The question is at present theoretical but could well emerge as the hardest of all bioethical issues. Biologists routinely alter the genes of mice, with methods that are not yet acceptable for making inheritable changes in people, but one day genetic engineers may figure out how to apply safe patches to the human biological software.
Everyone would like to have children who are healthy, beautiful and gifted. But people vary widely in all these qualities, depending on their parents' genes, and the pure luck of the draw at conception when each child gets allotted a random selection of half the parental gene pool.
Most human genes exist in several different versions in the population: some of them are great to have, some so-so and some downright deleterious.
This month the Icelandic company Decode Genetics found three quite common versions of a gene called BMP-2, each of which considerably increases its owner's risk of osteoporosis and bone fracture.
Suppose it was possible to delete any bad version of BMP-2, and of all other human genes, in a human embryo, and to replace them with good versions, without any risk to health. Would that be the right thing to do?
Parents who made such a choice would know they had given their child the best possible start in life. However expensive the procedure, it would be cheap in the long run if it saved a lifetime of medical bills, and therefore could be made available to all. Life's most serious unfairness, the difference in genetic endowment, would be erased from birth.
"One day, people may view sex as essentially recreational, and conception as something best done in the laboratory," Dr. Gregory Stock wrote recently in "Redesigning Humans.” Parents may start to believe it is "reckless and primitive to conceive a child without prior genetic testing."
Yet there are weighty arguments for not making inheritable changes to the human genome.
On the practical side, many genes have more than one effect, and swapping out the bad version of a gene can have unpredictable complications. The new gene, for example, may interact badly with the person's other genes.
But if the elimination of disease-causing variants of genes should prove successful, there might be no holding the line against parents who wanted to enhance strength or intelligence as well.
Upgrading the imperfect human material is all very well, but handling the transition between the super people and the ordinary variety promises to be awkward. Social stresses may emerge, especially if the technology does not trickle down quickly and smoothly.
Soup up those genes for I.Q.? Altering the genes that shape human behavior is not to be 0undertaken lightly. Human nature is a subtle blend of contrary qualities, the only survivor of evolution's many disastrous experiments. What could justify the risk of messing with such a delicate brew? Can't we be happy as we are, just as nature has shaped us?
"The human body and mind, highly complex and delicately balanced as a result of eons of gradual and exacting evolution, are almost certainly at risk from any ill-considered attempt at `improvement,' " the President's Council on Bioethics wrote in a report last month on the dangers of enhancing the body's natural abilities.
As the products of evolution, people may seem churlish if they challenge evolution's wisdom. But of course, evolution has none. It is a blind process that depends on constant error to create occasional lucky accidents.
By culling the unfortunate owners of bad genes, evolution keeps animals healthy and vigorous until the age of reproduction, and a bit beyond for species that provide parental care.
But evolution's rigor at favoring good genes that act early in life is mirrored by a weakness in screening out bad genes that act after the age of reproduction. Because of this weakness, evolution has failed to eliminate the bone-fracturing variants of BMP-2, and the bad, late-acting versions of many other genes in the human genome. This is the very reason that we age and die.
If evolution cannot help us after a certain age, why should we not help ourselves? Should not everyone have a right to the best versions of the genes in our collective genetic heritage, or at least to be born free of the worse ones?
And yet, if we reduce genetic differences, we risk turning the human population into one giant clone, tedious to meet with and bereft of the variation needed to respond to changing environments. The pursuit of perfection, if carried to extremes, is sure recipe for extinction.

 

  1. it defies the ethical constructs

  2. it augments the detrimental effects of an arbitrary genetic combination

  3. it would reduce he procreational value of sex

  4. it would topple the delicate balance of evolution

  5. it could lead to various socio-cultural complications

Reveal answer Fill a bubble to check yourself
D Correct answer
Explanation

(4) is the right answer as, (1) is one of the negative effects of Genetic Engineering but it can hardly be called dangerous. (2) is incorrect because Genetic Engineering decreases and not increases the negative effects of a natural combination. (3) again would not be dangerous. (5) only stress on the socio-cultural scenario while (4) covers the conditions.

Multiple choice

Which of the following statements about evolution can be extracted from the passage? I. Genetic Engineering is looked upon with trepidation because of its implied or palpable encumbrance to the process of evolution. II. Evolution is an ever continuing process in a living organism. III. Genetic Engineering is sure to convert evolution into an obsolete process.

Directions: Answer the question based on the following passage.

Now that we have decoded the human genome, why don't we improve it?
The question is at present theoretical but could well emerge as the hardest of all bioethical issues. Biologists routinely alter the genes of mice, with methods that are not yet acceptable for making inheritable changes in people, but one day genetic engineers may figure out how to apply safe patches to the human biological software.
Everyone would like to have children who are healthy, beautiful and gifted. But people vary widely in all these qualities, depending on their parents' genes, and the pure luck of the draw at conception when each child gets allotted a random selection of half the parental gene pool.
Most human genes exist in several different versions in the population: some of them are great to have, some so-so and some downright deleterious.
This month the Icelandic company Decode Genetics found three quite common versions of a gene called BMP-2, each of which considerably increases its owner's risk of osteoporosis and bone fracture.
Suppose it was possible to delete any bad version of BMP-2, and of all other human genes, in a human embryo, and to replace them with good versions, without any risk to health. Would that be the right thing to do?
Parents who made such a choice would know they had given their child the best possible start in life. However expensive the procedure, it would be cheap in the long run if it saved a lifetime of medical bills, and therefore could be made available to all. Life's most serious unfairness, the difference in genetic endowment, would be erased from birth.
"One day, people may view sex as essentially recreational, and conception as something best done in the laboratory," Dr. Gregory Stock wrote recently in "Redesigning Humans.” Parents may start to believe it is "reckless and primitive to conceive a child without prior genetic testing."
Yet there are weighty arguments for not making inheritable changes to the human genome.
On the practical side, many genes have more than one effect, and swapping out the bad version of a gene can have unpredictable complications. The new gene, for example, may interact badly with the person's other genes.
But if the elimination of disease-causing variants of genes should prove successful, there might be no holding the line against parents who wanted to enhance strength or intelligence as well.
Upgrading the imperfect human material is all very well, but handling the transition between the super people and the ordinary variety promises to be awkward. Social stresses may emerge, especially if the technology does not trickle down quickly and smoothly.
Soup up those genes for I.Q.? Altering the genes that shape human behavior is not to be 0undertaken lightly. Human nature is a subtle blend of contrary qualities, the only survivor of evolution's many disastrous experiments. What could justify the risk of messing with such a delicate brew? Can't we be happy as we are, just as nature has shaped us?
"The human body and mind, highly complex and delicately balanced as a result of eons of gradual and exacting evolution, are almost certainly at risk from any ill-considered attempt at `improvement,' " the President's Council on Bioethics wrote in a report last month on the dangers of enhancing the body's natural abilities.
As the products of evolution, people may seem churlish if they challenge evolution's wisdom. But of course, evolution has none. It is a blind process that depends on constant error to create occasional lucky accidents.
By culling the unfortunate owners of bad genes, evolution keeps animals healthy and vigorous until the age of reproduction, and a bit beyond for species that provide parental care.
But evolution's rigor at favoring good genes that act early in life is mirrored by a weakness in screening out bad genes that act after the age of reproduction. Because of this weakness, evolution has failed to eliminate the bone-fracturing variants of BMP-2, and the bad, late-acting versions of many other genes in the human genome. This is the very reason that we age and die.
If evolution cannot help us after a certain age, why should we not help ourselves? Should not everyone have a right to the best versions of the genes in our collective genetic heritage, or at least to be born free of the worse ones?
And yet, if we reduce genetic differences, we risk turning the human population into one giant clone, tedious to meet with and bereft of the variation needed to respond to changing environments. The pursuit of perfection, if carried to extremes, is sure recipe for extinction.

 

  1. I

  2. II

  3. III

  4. I & II

Reveal answer Fill a bubble to check yourself
A Correct answer
Explanation

(1) is the right choice as only the first statement is true. While I. is right as is obvious from the passage, III is an exaggeration of the 1st statement which cannot be proved from anything given in the passage. II is not true as per the following lines: “If evolution cannot help us after a certain age, why should we not help ourselves?”

Multiple choice

It can be inferred from the passage that ________________.

Directions: Answer the question based on the following passage.

Now that we have decoded the human genome, why don't we improve it?
The question is at present theoretical but could well emerge as the hardest of all bioethical issues. Biologists routinely alter the genes of mice, with methods that are not yet acceptable for making inheritable changes in people, but one day genetic engineers may figure out how to apply safe patches to the human biological software.
Everyone would like to have children who are healthy, beautiful and gifted. But people vary widely in all these qualities, depending on their parents' genes, and the pure luck of the draw at conception when each child gets allotted a random selection of half the parental gene pool.
Most human genes exist in several different versions in the population: some of them are great to have, some so-so and some downright deleterious.
This month the Icelandic company Decode Genetics found three quite common versions of a gene called BMP-2, each of which considerably increases its owner's risk of osteoporosis and bone fracture.
Suppose it was possible to delete any bad version of BMP-2, and of all other human genes, in a human embryo, and to replace them with good versions, without any risk to health. Would that be the right thing to do?
Parents who made such a choice would know they had given their child the best possible start in life. However expensive the procedure, it would be cheap in the long run if it saved a lifetime of medical bills, and therefore could be made available to all. Life's most serious unfairness, the difference in genetic endowment, would be erased from birth.
"One day, people may view sex as essentially recreational, and conception as something best done in the laboratory," Dr. Gregory Stock wrote recently in "Redesigning Humans.” Parents may start to believe it is "reckless and primitive to conceive a child without prior genetic testing."
Yet there are weighty arguments for not making inheritable changes to the human genome.
On the practical side, many genes have more than one effect, and swapping out the bad version of a gene can have unpredictable complications. The new gene, for example, may interact badly with the person's other genes.
But if the elimination of disease-causing variants of genes should prove successful, there might be no holding the line against parents who wanted to enhance strength or intelligence as well.
Upgrading the imperfect human material is all very well, but handling the transition between the super people and the ordinary variety promises to be awkward. Social stresses may emerge, especially if the technology does not trickle down quickly and smoothly.
Soup up those genes for I.Q.? Altering the genes that shape human behavior is not to be 0undertaken lightly. Human nature is a subtle blend of contrary qualities, the only survivor of evolution's many disastrous experiments. What could justify the risk of messing with such a delicate brew? Can't we be happy as we are, just as nature has shaped us?
"The human body and mind, highly complex and delicately balanced as a result of eons of gradual and exacting evolution, are almost certainly at risk from any ill-considered attempt at `improvement,' " the President's Council on Bioethics wrote in a report last month on the dangers of enhancing the body's natural abilities.
As the products of evolution, people may seem churlish if they challenge evolution's wisdom. But of course, evolution has none. It is a blind process that depends on constant error to create occasional lucky accidents.
By culling the unfortunate owners of bad genes, evolution keeps animals healthy and vigorous until the age of reproduction, and a bit beyond for species that provide parental care.
But evolution's rigor at favoring good genes that act early in life is mirrored by a weakness in screening out bad genes that act after the age of reproduction. Because of this weakness, evolution has failed to eliminate the bone-fracturing variants of BMP-2, and the bad, late-acting versions of many other genes in the human genome. This is the very reason that we age and die.
If evolution cannot help us after a certain age, why should we not help ourselves? Should not everyone have a right to the best versions of the genes in our collective genetic heritage, or at least to be born free of the worse ones?
And yet, if we reduce genetic differences, we risk turning the human population into one giant clone, tedious to meet with and bereft of the variation needed to respond to changing environments. The pursuit of perfection, if carried to extremes, is sure recipe for extinction.

 

  1. parents in search of a perfect child are in favour of Genetic Engineering

  2. in-vitro fertilization is the first step towards Genetic Engineering

  3. the definition of intelligence that compounds on the adaptability of an individual lends further authenticity to the induced intelligence through genetic alteration

  4. it has been proved that genetic alterations can lead to harmful results when these alerted genes find expression in future generations

Reveal answer Fill a bubble to check yourself
A Correct answer
Explanation

(1) is presumptuous at best as even if parents are in favour of a perfect child, they need not be in favour of getting one through Genetic Engineering. (2) can be derived from the following: “One day, people may view sex as essentially recreational, and conception as something best done in the laboratory,” (3) is contrary to the information given in the following lines: “Upgrading the imperfect human material is all very well, but handling the transition between the super people and the ordinary variety promises to be awkward. Social stresses may emerge, especially if the technology does not trickle down quickly and smoothly.” (4) is contrary to the information given that implies that inheritability of changes is still in doubt. (5) again can only be possible if the changes are inherited in order to be included in the gene pool.

Multiple choice

The organization of the passage can be best described as __________________.

Directions: Answer the question based on the following passage.

Now that we have decoded the human genome, why don't we improve it?
The question is at present theoretical but could well emerge as the hardest of all bioethical issues. Biologists routinely alter the genes of mice, with methods that are not yet acceptable for making inheritable changes in people, but one day genetic engineers may figure out how to apply safe patches to the human biological software.
Everyone would like to have children who are healthy, beautiful and gifted. But people vary widely in all these qualities, depending on their parents' genes, and the pure luck of the draw at conception when each child gets allotted a random selection of half the parental gene pool.
Most human genes exist in several different versions in the population: some of them are great to have, some so-so and some downright deleterious.
This month the Icelandic company Decode Genetics found three quite common versions of a gene called BMP-2, each of which considerably increases its owner's risk of osteoporosis and bone fracture.
Suppose it was possible to delete any bad version of BMP-2, and of all other human genes, in a human embryo, and to replace them with good versions, without any risk to health. Would that be the right thing to do?
Parents who made such a choice would know they had given their child the best possible start in life. However expensive the procedure, it would be cheap in the long run if it saved a lifetime of medical bills, and therefore could be made available to all. Life's most serious unfairness, the difference in genetic endowment, would be erased from birth.
"One day, people may view sex as essentially recreational, and conception as something best done in the laboratory," Dr. Gregory Stock wrote recently in "Redesigning Humans.” Parents may start to believe it is "reckless and primitive to conceive a child without prior genetic testing."
Yet there are weighty arguments for not making inheritable changes to the human genome.
On the practical side, many genes have more than one effect, and swapping out the bad version of a gene can have unpredictable complications. The new gene, for example, may interact badly with the person's other genes.
But if the elimination of disease-causing variants of genes should prove successful, there might be no holding the line against parents who wanted to enhance strength or intelligence as well.
Upgrading the imperfect human material is all very well, but handling the transition between the super people and the ordinary variety promises to be awkward. Social stresses may emerge, especially if the technology does not trickle down quickly and smoothly.
Soup up those genes for I.Q.? Altering the genes that shape human behavior is not to be 0undertaken lightly. Human nature is a subtle blend of contrary qualities, the only survivor of evolution's many disastrous experiments. What could justify the risk of messing with such a delicate brew? Can't we be happy as we are, just as nature has shaped us?
"The human body and mind, highly complex and delicately balanced as a result of eons of gradual and exacting evolution, are almost certainly at risk from any ill-considered attempt at `improvement,' " the President's Council on Bioethics wrote in a report last month on the dangers of enhancing the body's natural abilities.
As the products of evolution, people may seem churlish if they challenge evolution's wisdom. But of course, evolution has none. It is a blind process that depends on constant error to create occasional lucky accidents.
By culling the unfortunate owners of bad genes, evolution keeps animals healthy and vigorous until the age of reproduction, and a bit beyond for species that provide parental care.
But evolution's rigor at favoring good genes that act early in life is mirrored by a weakness in screening out bad genes that act after the age of reproduction. Because of this weakness, evolution has failed to eliminate the bone-fracturing variants of BMP-2, and the bad, late-acting versions of many other genes in the human genome. This is the very reason that we age and die.
If evolution cannot help us after a certain age, why should we not help ourselves? Should not everyone have a right to the best versions of the genes in our collective genetic heritage, or at least to be born free of the worse ones?
And yet, if we reduce genetic differences, we risk turning the human population into one giant clone, tedious to meet with and bereft of the variation needed to respond to changing environments. The pursuit of perfection, if carried to extremes, is sure recipe for extinction.

 

  1. analytic explanation of the author's stand in an argument

  2. introduction of a scientific phenomenon and subsequently dissecting it

  3. a subjective analysis of a scientific technique

  4. a sequential enlisting of the pros and cons the two sides of a controversy

  5. logistic explanation of a scientific phenomenon

Reveal answer Fill a bubble to check yourself
D Correct answer
Explanation

(1) and (3) are not correct as the author's subjectivity of his stand is not given anywhere in the passage and neither can it be inferred from the passage. (2) is misleading as the main purpose of the passage is not to dissect Genetic Engineering but to talk about whether it is ethically correct. (5) is again not right as no logistics are given in the passage. (4) explains the organization of the passage best.

Multiple choice

Genetic Engineering can have all the following functions except ____________________.

Directions: Answer the question based on the following passage.

Now that we have decoded the human genome, why don't we improve it?
The question is at present theoretical but could well emerge as the hardest of all bioethical issues. Biologists routinely alter the genes of mice, with methods that are not yet acceptable for making inheritable changes in people, but one day genetic engineers may figure out how to apply safe patches to the human biological software.
Everyone would like to have children who are healthy, beautiful and gifted. But people vary widely in all these qualities, depending on their parents' genes, and the pure luck of the draw at conception when each child gets allotted a random selection of half the parental gene pool.
Most human genes exist in several different versions in the population: some of them are great to have, some so-so and some downright deleterious.
This month the Icelandic company Decode Genetics found three quite common versions of a gene called BMP-2, each of which considerably increases its owner's risk of osteoporosis and bone fracture.
Suppose it was possible to delete any bad version of BMP-2, and of all other human genes, in a human embryo, and to replace them with good versions, without any risk to health. Would that be the right thing to do?
Parents who made such a choice would know they had given their child the best possible start in life. However expensive the procedure, it would be cheap in the long run if it saved a lifetime of medical bills, and therefore could be made available to all. Life's most serious unfairness, the difference in genetic endowment, would be erased from birth.
"One day, people may view sex as essentially recreational, and conception as something best done in the laboratory," Dr. Gregory Stock wrote recently in "Redesigning Humans.” Parents may start to believe it is "reckless and primitive to conceive a child without prior genetic testing."
Yet there are weighty arguments for not making inheritable changes to the human genome.
On the practical side, many genes have more than one effect, and swapping out the bad version of a gene can have unpredictable complications. The new gene, for example, may interact badly with the person's other genes.
But if the elimination of disease-causing variants of genes should prove successful, there might be no holding the line against parents who wanted to enhance strength or intelligence as well.
Upgrading the imperfect human material is all very well, but handling the transition between the super people and the ordinary variety promises to be awkward. Social stresses may emerge, especially if the technology does not trickle down quickly and smoothly.
Soup up those genes for I.Q.? Altering the genes that shape human behavior is not to be 0undertaken lightly. Human nature is a subtle blend of contrary qualities, the only survivor of evolution's many disastrous experiments. What could justify the risk of messing with such a delicate brew? Can't we be happy as we are, just as nature has shaped us?
"The human body and mind, highly complex and delicately balanced as a result of eons of gradual and exacting evolution, are almost certainly at risk from any ill-considered attempt at `improvement,' " the President's Council on Bioethics wrote in a report last month on the dangers of enhancing the body's natural abilities.
As the products of evolution, people may seem churlish if they challenge evolution's wisdom. But of course, evolution has none. It is a blind process that depends on constant error to create occasional lucky accidents.
By culling the unfortunate owners of bad genes, evolution keeps animals healthy and vigorous until the age of reproduction, and a bit beyond for species that provide parental care.
But evolution's rigor at favoring good genes that act early in life is mirrored by a weakness in screening out bad genes that act after the age of reproduction. Because of this weakness, evolution has failed to eliminate the bone-fracturing variants of BMP-2, and the bad, late-acting versions of many other genes in the human genome. This is the very reason that we age and die.
If evolution cannot help us after a certain age, why should we not help ourselves? Should not everyone have a right to the best versions of the genes in our collective genetic heritage, or at least to be born free of the worse ones?
And yet, if we reduce genetic differences, we risk turning the human population into one giant clone, tedious to meet with and bereft of the variation needed to respond to changing environments. The pursuit of perfection, if carried to extremes, is sure recipe for extinction.

 

  1. advancement of the Species

  2. selection of the characteristics of the progeny

  3. selection and isolation of certain genetic components of some disorders

  4. preservation through replication

  5. banishment of mediocrity

Reveal answer Fill a bubble to check yourself
A Correct answer
Explanation

(1) is the right choice because the question whether Genetic Engineering will ultimately result in the advancement of species or its extinction is still a controversy which in turn is the basic intention behind the passage.

Multiple choice
  1. to kill the cancer cells

  2. for the formation of somaclonal antibodies

  3. for the formation of somatic hybrids

  4. for the formation of antibiotics

Reveal answer Fill a bubble to check yourself
B Correct answer
Explanation

Monoclonal antibodies are usually produced from hybridoma clones. Each hybridoma clone is derived by the fusion of a myeloma cell and antibody producing lymphocyte.